Using the accepted values of deltaH and deltaS, calculate ksp of anhydrous CaSO4 at 5 degrees C. Accepted values---- DeltaS -139.7 J/mol K, Delta H -18.99 kJ/mol
Using the accepted values of deltaH and deltaS, calculate ksp of anhydrous CaSO4 at 5 degrees...
Ag2S given DeltaH= -32 kj/mol, DeltaG=-40 kj/mol DeltaS= 146 j/k*mol calculate Gibbs free energy for the reaction of dissolving silver sulfide, Ag2S, in water (25 C.) Do the calculations in two ways. Use the standard Enthalpy of formation, deltaH, and entropy S values, and the formula deltaG=deltaH-TdeltaS. Use the standard free energies of formation deltaG and the formula deltaG=deltaG(products)-deltaG(reactants).
an acid-base titration was preformed to determine the Ksp of a slightly soluble salt. the Ksp was experimentally determined by 80°C, and the detaG° was determined to be 25.28 KJ/mol. if deltaS° is -115 J/mol•k, what is delta H in KJ/mol for this slightly soluble salt?
a) use the data given below and calculate the deltaH, delta S , delta G and Kp at 25degrees celcius for the reaction 2NO(g) + O2 = 2 NO2(g) b) calculate the delta G for the reaction at 250 degrees celcius c) at what tempurature (degrees celcuis) is delta G equal to zero ? In what temperature range is this reaction product favoured? Compound NO - Delta Hf,kJ/mol =90.9 Delta S,J/mol.K =210.76 Compount O2 - Delta Hf,kJ/mol =0 Delta S,/j/mol.K=205.14...
Using the values of Delta H and Delta S given, calculate Delta G for each of the reactions at 25 degree C and indicate whether the reactions are spontaneous or non-spontaneous. Explain. Delta H = 10.5 kJ/mol and Delta S = 30.0 J/K-mol Delta H = -10.5 kJ/mol and Delta S = 105. J/K-mol
Use deltaH and S to calculate DeltaG rxn... Use Delta H degree_f and S degree to calculate Delta G degree rxn (Delta G degree sys) at 25 C for the reaction below: 4 KClO3 (s) rightarrow 3 KClO4 (s) + KCl (s) Delta H degree_f KClO3 = -397.7 kJ/mol; KClO4 = -432.8 kJ/mol; KCl = -436.7 kJ/mol S degree KClO3 = 143.1 kJ/mol; KClO4 = 151.0 kJ/mol; KCl = 82.6 kJ/mol
8.) From the values of delta H and delta S, calculate delta G then predict whether the following reactions would be spontaneous or not at 25 C. a) Reaction A: delta H= 10.5 kJ/mol, and delta S = 30 J/K mol b) Reaction B: delta H=1.8 kJ/mol, and delta S = -113 J/K mol 9.) Calculate the delta G and K, for the following equilibrium reaction at 25 C: 2H2O(Ⓡ) <-> 2H2(g) + O2(8) delta Gran H2O(x) = -228.6 kJ/mol
Delta G f(CO)= -137.3 kJ/molDelta G f(CH3OH)= -166.3 kJ/molDelta H f(CO)= -110.5 kJ/molDelta H f(CH3OH)= -238.7 kJ/molS(CO)= 197.9 J/K molS(CH3OH)= 126.8 J/K molCalculate Delta G at 25 Degrees Celcius.
The Ksp of Caso4 is 4.93x 10-5 Calculate the solubility (in g/L) of Caso4(s) in 0.250 M NazSO4(aq) at 25 °C. Number g/L Which salts will be more soluble in an acidic solurtion than in pure water? PbCl2 PbSO □ CaCO3
DeltaH degree is +23 kJ mol^-1 of phosphine (PH_3) for the reaction Calculate Delta S degree for this reaction. Explain how this information allows you to determine the spontaneity or non-spontaneity of this reaction at any temperature. (S degree for PH_3 is 210 J K^-1 mol^-1.) Do these results indicate anything about the possibility of the existence of phosphine? Explain your answer.
3. Calculate deltaS and deltaG and the equilibrium constant 298 K for each of these reactions, and indicate whether they are spontaneous under standard conditionsa. H2 (g) + F2 (g) --> 2HF (g) b. C2H5OH (g) --> C2H4 (g) + H2O (g) (Calculate deltaH for this one as well ) c.2HCl (g) + Br2 (g) → 2HBr(g) + Cl2 (g) d. PCl3 (g) + 3 H2 (g) --> PH3 (g) + 3 HCl (g) (Calculate H for this one as...